Lysine Succinylation Contributes to Aflatoxin Production and Pathogenicity in Aspergillus flavus
Silin Ren1, Mingkun Yang2, Yuewei Yue1
1From the ‡Key Laboratory of Pathogenic Fungi and Mycotoxins of Fujian Province, and School of Life Sciences, Fujian Agriculture and Forestry University, Fuzhou, 350002, China.
Abstract:
Aspergillus flavus (A. flavus) is a ubiquitous saprophytic and pathogenic fungus that produces the aflatoxin carcinogen, and A. flavus can have tremendous economic and health impacts worldwide. Increasing evidence demonstrates that lysine succinylation plays an important regulatory role in metabolic processes in both bacterial and human cells. However, little is known about the extent and function of lysine succinylation in A. flavus Here, we performed a global succinylome analysis of A. flavus using high accuracy nano-LC-MS/MS in combination with the enrichment of succinylated peptides from digested cell lysates and subsequent peptide identification. In total, 985 succinylation sites on 349 succinylated proteins were identified in this pathogen. Bioinformatics analysis revealed that the succinylated proteins were involved in various biological processes and were particularly enriched in the aflatoxin biosynthesis process. Site-specific mutagenesis and biochemical studies showed that lysine succinylation on the norsolorinic acid reductase NorA (AflE), a key enzyme in aflatoxins biosynthesis, can affect the production of sclerotia and aflatoxins biosynthesis in A. flavus. Together, our findings reveal widespread roles for lysine succinylation in regulating metabolism and aflatoxins biosynthesis in A. flavus Our data provide a rich resource for functional analyses of lysine succinylation and facilitate the dissection of metabolic networks in this pathogen.
Insights
Lysine succinylation regulates metabolism and aflatoxin production in Aspergillus flavus. This study identified 985 succinylation sites, revealing key roles in fungal pathways and aflatoxin biosynthesis.
Area of Science:
- Mycology
- Biochemistry
- Proteomics
Background:
- Aspergillus flavus is a fungus producing carcinogenic aflatoxins, posing global health and economic risks.
- Lysine succinylation is a crucial post-translational modification in cellular metabolism, but its role in A. flavus is largely uncharacterized.
Purpose of the Study:
- To conduct a global succinylome analysis of A. flavus.
- To investigate the role of lysine succinylation in A. flavus metabolism and aflatoxin biosynthesis.
Main Methods:
- Global succinylome analysis using high-accuracy nano-LC-MS/MS.
- Enrichment of succinylated peptides from digested cell lysates.
- Bioinformatics analysis, site-specific mutagenesis, and biochemical studies.
Main Results:
- Identified 985 succinylation sites on 349 proteins in A. flavus.
- Succinylated proteins are involved in diverse biological processes, notably aflatoxin biosynthesis.
- Lysine succinylation of NorA (AflE) impacts sclerotia production and aflatoxin biosynthesis.
Conclusions:
- Lysine succinylation plays widespread regulatory roles in A. flavus metabolism and aflatoxin production.
- Findings provide a resource for studying succinylation and fungal metabolic networks.
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